Senior Capstone ProjectAbstract: This paper presents the results of a real-world design project involving both undergraduateengineering and business students. The project involves the design, development, andprototyping of a next generation pallet rack column guard. The guard allows for the engagementand protection of a storage rack upright (column) from an impact force by an external objectsuch as a forklift. The guard protects the storage rack by absorbing and damping the resultingimpact force. The guard is constructed from an injection-molded thermoset elastomer.Elastomers can store and release more potential energy per unit mass (or volume) than steel andplastic guards. This translates to greater energy absorption which will help preserve
how to structure a debateDay 3 – The students participated in a live AI demonstration. Hey learnedabout ”hallucinations” and the importance of have clear inputs. They also hada discuss about how AI and other technologies have bene utilized in unethicalways.Day 4 – The students worked with a professional videographer and producer 5to learn about storytelling and using technology to share an effective storyDay 5 – The students presented their capstone projects to a panel of industryand academic leaders 5 Camp Instructors
Science, Fracture Mechanics, Process-Structure-Property Relationships, Finite Element Stress Analysis Modeling & Failure Analysis, ASME BPV Code Sec VIII Div. 1 & 2, API 579/ASME FFS-1 Code, Materials Testing and Engineering Education. Professionally registered engineer in the State of Texas (PE).Dr. Joanna Tsenn, Texas A&M University Joanna Tsenn is an Associate Professor of Instruction in the J. Mike Walker ’66 Department of Mechanical Engineering at Texas A&M University. She earned her B.S. from the University of Texas at Austin and her Ph.D. from Texas A&M University. She coordinates the mechanical engineering senior capstone design program and teaches senior design lectures and studios. Her
Learning Environments," International Journal of Emerging Technologies in Learning (iJET), vol. 15, no. 10, pp. 157-174, 2020.[2] P. M. Griffin, S. O. Griffin and D. C. Llewellyn, "The Impact of Group Size and Project Duration on Capstone Design," Journal of Engineering Education, vol. 93, no. 3, pp. 185- 193, 2013.[3] K. Gieskes and I. Tiu, "The Effect of Male to Female Ratios on Female Students in Engineering and Technical Science Majors," in 2024 ASEE St. Lawrence Section Annual Conference, York University, in Toronto, Ontario, Canada, 2024.[4] A. E. Bell, S. J. Spencer, E. Iserman and C. E. Logel, "Stereotype Threat and Women's Performance in Engineering," Journal of Engineering Education, vol. 92, pp. 307-312, 2003.[5] B
emphasizes that identifying unmet clinical needs must includeglobal healthcare settings, not just local communities. Many undergraduate BME programs offerglobal engineering experiences through extracurricular programs and international internships,collaborating with organizations like the International Federation for Medical and BiologicalEngineering [14], Engineering World Health [15], and Engineers Without Borders [16]. Someprograms incorporate capstone projects [17], where students work with clinical partners indeveloping countries. However, these capstones lack direct student immersion in foreignhealthcare settings before solution development. Internships and summer programs allow in-person observation but face high costs, housing challenges
responsibilityregarding sustainability. As can be seen, 8% of surveyed students responded neutrally. Thisresult indicates that the lecture or case study should highlight the importance of ethical and socialresponsibility in engineering, particularly concerning sustainability and sustainable productdesign. Capstone project/machine design course is another excellent course to reinforce whatstudents learn at the entry level to solve real-world problems, enabling them to think holisticallyand consider the broader implications of their work. Do you believe engineers have a significant role to play in promoting sustainability
questions. Therefore, it is desiredto use a low cost open educational resource (OER) that can be adapted to the needs of eachcourse. One such OER is MyOpenMath, a mathematics based online tool that integrates intocommon learning management systems and is free for both faculty and students. In this paperwe discuss how this tool is currently implemented in a senior capstone design course and a unitoperations laboratory in chemical engineering. This presentation includes characteristics ofMyOpenMath, benefits for instructors, available instructor training, and benefits over usingcurrent quizzes in the Canvas LMS. Not limited to chemical engineering courses, MyOpenMathis applicable to any equation based course. This paper focuses on the faculty
. Additionally, she serves as the chair of the undergraduate subcommittee for the department’s Health, Equity, and Wellness committee and holds the position of president in the BMES student chapter at UC Davis.Saahil Sachdeva, University of California, Davis Saahil Sachdeva is a 4th-year undergraduate student in biomedical engineering at UC Davis. After completing his role as the 2024 Peer Mentor for the BME at the Health Campus program, he is now guiding the students to integrate their clinical immersion experience into their upcoming capstone projects. Saahil is also actively involved in research, including the development of a bone marrow microphysiological system under Dr. Steven George at UC Davis and an innovative
impact practicesIntroductionAcademic support systems are being implemented in colleges and universities as a response tounderrepresentation of minorities in science, especially those requiring a graduate degree [1].Integrated enrichment programs have succeeded by increasing student’s sense of integration intoboth academic and social aspects of college life – namely, by providing communities forlearning, collaboration, and career development. Programs such as the Meyerhoff ScholarsProgram at University of Maryland, Baltimore County [2] [3] [4], the Howard Hughes MedicalInstitute’s (HHMI) Capstone Institutions [5], the Biology Scholars Program at University ofCalifornia, Davis [6], and the Program for Excellence in Education and Research in the
, foster motivation and psychological growth. These psychological needs areautonomy, competence, and relatedness. Autonomy involves being and acting in harmony withone's integrated sense of self and values as well as feeling that one has ownership over one’sactions. In educational environments, autonomy is visible when learning environments offerlearners opportunities for choice, self-direction, and flexibility rather than imposing strict or rigiddirection and demands. Learners are thus motivated when they have choice in their academicpathways, courses, learning topics, classroom projects, etcetera based on their interests andaspirations. Competence involves mastering tasks and learning new skills and involves a sense ofaccomplishment derived from
includes a three-semester MS track (30credits) or a two-semester certificate track (15 credits), both of which are infused with career-focused learning. Within their programs, GEES scholars engage in real-world projects,industry-based internships, and networking with professionals. This structure is designed toequip them not only with technical skills but also with the ability to navigate complexworkplace environments.GEES goes beyond classroom education by integrating co-curricular activities that fosterprofessional skills. For example, students participate in workshops on job search strategies,interview techniques, and negotiation skills, helping them navigate the professional worldwith confidence. Each student is also matched with an industry
the liberal arts at aresearch university. This unique combination not only defines who we are, but defines our unique characteristics. Our students will graduatewith a BS in Engineering and have an exemplary undergraduate experience infused with the liberal arts. We strive to be a leader inundergraduate education with primary motivations being: innovation in the curriculum, effective learning methods, and an authentic liberalarts curriculum to educate the whole person, featuring a project-based curriculum that emphasizes creative design and communitypartnerships. Currently, the department has 7 faculty and 130 students (42% female and 20% minority). Our vision for our engineeringstudents is to help them become (a) leaders and agents of change
proposed that actualengineering examples and reporting of case-studies should be used. Similarly Gao [10] discussedthe Task-Based-Instruction and the Project-Based-Instruction pedagogies as learner-centeredapproaches to teach technical writing, the former being based on assigned writing tasks for eachlesson, typically to a student team, while the latter utilizes a team-project for most of thesemester. He emphasized that the core or focus for either approach is not the learning of anystructure and grammar points, but instead communicating the tasks involved in technical writing,although language proficiency still helps students, as it improves student completion of the tasks.Several innovative approaches have been proposed to teach technical